Hybrid vehicle control device
The hybrid vehicle control device addresses motor load and overheating issues by managing fuel cut and deceleration through integrated control units, enhancing vehicle performance and safety.
Patent Information
- Application Number
- JP2022104751
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-06-29
- Publication Date
- 2025-08-20
- Estimated Expiration
- 2042-06-29
AI Technical Summary
In hybrid vehicles, limiting fuel cut to reduce motor load during high deceleration requirements, such as downhill control, can lead to increased motor load and potential overheating of engine components.
A control device that includes a deceleration control unit, fuel cut control unit, downhill control unit, and deceleration limiting unit to manage engine and motor operations, restricting fuel cut based on conditions to prevent motor overload and overheating, and notifying the driver of deceleration limitations.
The solution effectively suppresses motor load and prevents overheating by managing fuel cut and deceleration, ensuring smooth operation and driver awareness of deceleration adjustments.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a control device for a hybrid vehicle. [Background technology]
[0002] In a hybrid vehicle, the deceleration of the vehicle can be ensured by cutting fuel (see, for example, Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2017-177823 Summary of the Invention [Problem to be solved by the invention]
[0004] Fuel cut may be limited based on the establishment of a predetermined condition. When fuel cut is limited, deceleration is reduced. In such a case, downhill control requiring high deceleration may be executed. When downhill control requiring high deceleration is being executed while fuel cut is limited, it is conceivable to ensure high deceleration by increasing the regenerative torque of the motor. However, in this case, there is a risk that the load on the motor will increase.
[0005] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a control device for a hybrid vehicle that suppresses an increase in the load on the motor. [Means for solving the problem]
[0006] The above object can be achieved by a control device for a hybrid vehicle that includes a deceleration control unit that controls the engine and motor, which are the driving power sources, to control the deceleration of the hybrid vehicle; a fuel cut control unit that restricts or allows fuel cut in the engine based on whether or not a predetermined condition is met; a downhill control unit that executes downhill control that increases the deceleration when the hybrid vehicle is traveling downhill compared to when the hybrid vehicle is traveling on a flat slope; and a deceleration limiting unit that restricts fuel cut and limits the deceleration during the downhill control to be lower than the deceleration during the downhill control when fuel cut is permitted.
[0007] The deceleration limiting unit may limit the deceleration when fuel cut is limited and the downhill control is being executed to be higher than the deceleration when fuel cut is limited and the downhill control is stopped.
[0008] The deceleration limiting unit may limit the deceleration when fuel cut is restricted and the downhill control is being executed to be lower than the deceleration when fuel cut is permitted and the downhill control is stopped.
[0009] The engine may include an overheating prediction unit that predicts whether a filter that captures particulate matter in the exhaust gas of the engine will overheat due to fuel cutoff, and the fuel cutoff control unit may restrict fuel cutoff by regarding the predetermined condition as being met when it is predicted that the filter will overheat, and may permit fuel cutoff by regarding the predetermined condition as not being met when it is predicted that the filter will not overheat.
[0010] The vehicle may further include a notification control unit that causes the notification unit to notify the driver that the deceleration will be limited when fuel cut is limited. [Effects of the Invention]
[0011] According to the present invention, it is possible to provide a control device for a hybrid vehicle that suppresses an increase in the load on the motor. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 1 is a schematic diagram of a hybrid vehicle. [Figure 2] FIG. 2 is a schematic diagram of the engine. [Figure 3] FIG. 3 is a flowchart showing an example of deceleration limit control executed by the ECU. [Figure 4] FIG. 4 is an example of a map that defines the time during which fuel cut is possible. DETAILED DESCRIPTION OF THE INVENTION
[0013] [Hybrid vehicle configuration] 1 is a schematic diagram of a hybrid vehicle 1 according to this embodiment. The hybrid vehicle 1 includes an ECU (Electronic Control Unit) 100, an engine 10, a first motor generator (hereinafter referred to as "first MG (Motor Generator)") 14, a second motor generator (hereinafter referred to as "second MG") 15, a PCU (Power Control Unit) 17, a battery 18, a power split mechanism 50, a transmission mechanism 51, a reduction mechanism 52, and drive wheels 53. The engine 10 is a gasoline engine, but is not limited thereto and may be a diesel engine. The engine 10, the first MG 14, and the second MG 15 are power sources for driving the hybrid vehicle 1.
[0014] Both the first MG 14 and the second MG 15 function as motors that output torque when supplied with drive power, and as generators that generate regenerative power when torque is applied. Specifically, the first MG 14 and the second MG 15 are AC rotating electric machines. The AC rotating electric machines are, for example, permanent magnet synchronous motors that have rotors with embedded permanent magnets.
[0015] The first MG 14 and the second MG 15 are electrically connected to the battery 18 via the PCU 17. The PCU 17 includes a first inverter that exchanges power with the first MG 14, a second inverter that exchanges power with the second MG 15, and a converter. The converter boosts the power of the battery 18 and supplies it to the first and second inverters, and reduces the power supplied from the first and second inverters and supplies it to the battery 18. The first inverter converts DC power from the converter into AC power and supplies it to the first MG 14, and converts AC power from the first MG 14 into DC power and supplies it to the converter. The second inverter converts DC power from the converter into AC power and supplies it to the second MG 15, and converts AC power from the second MG 15 into DC power and supplies it to the converter. That is, the PCU 17 charges the battery 18 using the regenerative electric power generated in the first MG 14 or the second MG 15, and drives the first MG 14 or the second MG 15 using the electric power charged in the battery 18.
[0016] The battery 18 is made up of a plurality of stacked cells, which are, for example, secondary batteries such as nickel-metal hydride batteries or lithium-ion batteries.
[0017] The power split mechanism 50 mechanically couples the crankshaft of the engine 10, the rotating shaft of the first MG 14, and the output shaft of the power split mechanism 50. The power split mechanism 50 is, for example, a planetary gear mechanism including a sun gear, a planetary carrier, a pinion gear, and a ring gear. The output shaft of the power split mechanism 50 is coupled to a transmission mechanism 51. The rotating shaft of the second MG 15 is also coupled to the transmission mechanism 51. The transmission mechanism 51 is coupled to a reduction mechanism 52, and the driving forces of the engine 10, the first MG 14, and the second MG 15 are transmitted to drive wheels 53 via the transmission mechanism 51 and the reduction mechanism 52.
[0018] The reduction mechanism 52 is a multi-stage automatic transmission that changes the gear ratio by changing the gear ratio under the control of the ECU 100. As a result, the reduction mechanism 52 switches between multiple power transmission states. The multiple power transmission states include an N (neutral) range, a D (drive) range, an R (reverse) range, and a P (parking) range. In the N range, power transmission to the drive wheels 53 is cut off. In the D range, forward driving is possible. In the R range, reverse driving is possible. In the P range, power transmission to the drive wheels 53 is cut off and rotation of the output shaft of the reduction mechanism 52 is mechanically prevented. The range of the reduction mechanism 52 can be changed by the driver manually operating a shift lever 90. Note that a continuously variable transmission (hereinafter referred to as a "CVT (Continuously Variable Transmission)") that continuously changes the gear ratio may be used instead of the reduction mechanism 52.
[0019] The ECU 100 is an electronic control unit that includes a processing circuit that performs various types of calculations related to vehicle driving control and a memory that stores control programs and data. The ECU 100 is an example of a control device for the hybrid vehicle 1, and functionally realizes a deceleration control unit, a fuel cut control unit, a downhill control unit, a deceleration limiting unit, an overheating prediction unit, and a notification control unit, which will be described in detail later.
[0020] The display unit 80 is provided on the instrument panel of the hybrid vehicle 1. The display unit 80 will be described in detail later, but is an example of a notification unit that notifies that the deceleration of the hybrid vehicle 1 will be suppressed as a result of limiting fuel cut. Note that instead of the display unit 80, for example, a speaker of an audio system or a navigation system of the hybrid vehicle 1 may be used.
[0021] The ECU 100 receives signals from an ignition switch 71, a water temperature sensor 72, a crank angle sensor 73, an air flow meter 74, a shift position sensor 75, an accelerator opening sensor 76, and a road gradient sensor 77. The water temperature sensor 72 detects the temperature of the coolant for the engine 10. The crank angle sensor 73 detects the engine rotation speed, which is the rotation speed of the crankshaft of the engine 10. The air flow meter 74 detects the amount of intake air introduced into the engine 10. The shift position sensor 75 detects the operating position of the shift lever 90. The accelerator opening sensor 76 detects the operating position of the accelerator pedal 91. The road gradient sensor 77 detects the gradient of the road on which the hybrid vehicle 1 is traveling.
[0022] The ECU 100 controls acceleration and deceleration based on the accelerator operation amount. Specifically, the outputs of the engine 10, the first MG 14, and the second MG 15 are controlled so as to achieve a target acceleration or target deceleration set based on the accelerator operation amount. The output of the engine 10 is controlled by the intake air amount and the fuel injection amount. The outputs of the first MG 14 and the second MG 15 are controlled by the PCU 17. The above control is an example of processing executed by the deceleration control unit.
[0023] The ECU 100 executes downhill control based on the detection result of the road surface gradient sensor 77. The downhill control is a control that increases the deceleration when the hybrid vehicle 1 is traveling downhill compared to when traveling on flat ground. The downhill control controls the deceleration to be greater the steeper the angle of the downhill road surface. The downhill control is not executed when traveling on flat ground or when traveling uphill. The downhill control is an example of a process executed by the downhill control unit.
[0024] [Engine outline] FIG. 2 is a schematic diagram of the engine 10. The engine 10 has cylinders 30, pistons 31, connecting rods 32, a crankshaft 33, an intake passage 35, an intake valve 36, an exhaust passage 37, and an exhaust valve 38. FIG. 2 shows only one of the multiple cylinders 30 of the engine 10. An air-fuel mixture is combusted in the cylinder 30. A piston 31 is accommodated in each cylinder 30 so as to be able to reciprocate, and is connected to the crankshaft 33, which is the output shaft of the engine 10, via a connecting rod 32. The connecting rod 32 and the crankshaft 33 convert the reciprocating motion of the piston 31 into the rotational motion of the crankshaft 33.
[0025] Each cylinder 30 is provided with an in-cylinder injection valve 41d. The in-cylinder injection valve 41d injects fuel directly into the cylinder 30. The intake passage 35 is provided with a port injection valve 41p that injects fuel toward the intake port 35p. Each cylinder 30 is provided with an ignition device 42 that ignites, by spark discharge, an air-fuel mixture of intake air introduced through the intake passage 35 and fuel injected by the in-cylinder injection valve 41d and the port injection valve 41p. It is sufficient that at least one of the in-cylinder injection valve 41d and the port injection valve 41p is provided.
[0026] The intake passage 35 is connected to an intake port 35p of each cylinder 30 via an intake valve 36. The exhaust passage 37 is connected to an exhaust port 37p of each cylinder 30 via an exhaust valve 38. The intake passage 35 is provided with the air flow meter 74 and a throttle valve 40 that controls the amount of intake air.
[0027] A three-way catalyst 43 and a gasoline particulate filter (GPF) 44 are provided in the exhaust passage 37 from the upstream side. The three-way catalyst 43 contains a catalytic metal such as platinum (Pt), palladium (Pd), or rhodium (Rh), has oxygen storage capacity, and purifies NOx, HC, and CO.
[0028] The GPF 44 is a porous ceramic structure that captures exhaust particulate matter (hereinafter referred to as PM (Particulate Matter)) in the exhaust gas. The GPF 44 also supports a precious metal such as platinum. During regeneration control, this precious metal promotes the oxidation reaction of the accumulated PM. The GPF 44 is an example of a filter. If the engine 10 is a diesel engine, for example, a DPF (Diesel Particulate Filter) is provided instead of the GPF 44.
[0029] The throttle valve 40 can increase or decrease the amount of intake air introduced into the cylinder 30 by increasing or decreasing the opening degree thereof. The opening degree of the throttle valve 40 is controlled in accordance with the opening degree required by the ECU 100.
[0030] When the accelerator opening is released while the engine 10 is running and the hybrid vehicle 1 is traveling, the ECU 100 executes a fuel cut to stop fuel injection from the in-cylinder injection valves 41d and the port injection valves 41p of the engine 10. This causes the output torque of the engine 10 to become a negative value, allowing the hybrid vehicle 1 to decelerate. Furthermore, while the fuel cut is being executed, air (oxygen) is supplied to the GPF 44, and PM accumulated in the GPF 44 is burned.
[0031] Furthermore, as will be described in detail later, the ECU 100 limits or permits fuel cut based on whether or not a predetermined condition is satisfied. If fuel cut is limited, the engine 10 cannot ensure sufficient deceleration. If downhill control is executed in such a case, it is necessary to increase the regenerative torque of the first MG 14 and the second MG 15, which may increase the load on the first MG 14 and the second MG 15. Therefore, the ECU 100 executes the following deceleration limit control.
[0032] [ECU-implemented deceleration limit control] FIG. 3 is a flowchart showing an example of deceleration limit control executed by the ECU 100. This control is repeatedly executed at predetermined intervals while the ignition is on. First, the ECU 100 predicts whether the GPF 44 will overheat due to the execution of fuel cut while the engine 10 is running (step S1). Specifically, the prediction of whether the GPF 44 will overheat is as follows: The ECU 100 calculates the time during which the GPF 44 can continue fuel cut (hereinafter referred to as the fuel cut possible time). If the fuel cut possible time is equal to or greater than a threshold, the ECU 100 predicts that the GPF 44 will not overheat. If the fuel cut possible time is less than the threshold, the ECU 100 predicts that the GPF 44 will overheat. Step S1 is an example of processing executed by the overheat prediction unit.
[0033] The ECU 100 calculates the fuel cutoff possible time by referring to the map shown in FIG. 4 based on the amount of PM accumulated in the GPF 44 and the temperature of the GPF 44. FIG. 4 is an example of a map that defines the fuel cutoff possible time. This map is calculated in advance based on experimental results and simulation results and is pre-stored in the ROM of the ECU 100. The horizontal axis represents the PM accumulation amount, and the vertical axis represents the temperature of the GPF 44. FIG. 4 shows fuel cutoff possible times T1, T2, and T3. The fuel cutoff possible time T1 is shorter than each of the fuel cutoff possible times T2 and T3. The fuel cutoff possible time T3 is longer than each of the fuel cutoff possible times T1 and T2. As shown in FIG. 4, when the PM accumulation amount is large, the fuel cutoff possible time is calculated to be shorter than when the PM accumulation amount is small. The reason for this is that the greater the PM accumulation amount, the greater the amount of PM oxidized per unit time when oxygen flows into the GPF 44, and the shorter the time it takes for the temperature of the GPF 44 to reach its upper limit value. Furthermore, when the temperature of the GPF 44 is high, the calculated fuel cut possible time is shorter than when the temperature of the GPF 44 is low. This is because the higher the temperature of the GPF 44, the shorter the time it takes for the temperature of the GPF 44 to reach the upper limit value.
[0034] The amount of PM accumulated in the GPF 44 is calculated based on, for example, the engine rotation speed, the charging efficiency, and the temperature of the coolant. The charging efficiency is calculated based on the engine rotation speed and the intake air amount. The engine rotation speed is calculated based on the detection value of the crank angle sensor 73. The intake air amount is calculated based on the detection value of the air flow meter 74. The temperature of the coolant is calculated based on the detection value of the water temperature sensor 72.
[0035] The temperature of the GPF 44 is calculated based on, for example, the engine rotation speed and the charging efficiency. However, the method of calculating the amount of PM accumulated in the GPF 44 and the temperature of the GPF 44 is not limited to this. For example, the amount of PM accumulated may be calculated based on the pressure difference before and after the GPF 44. Furthermore, the temperature of the GPF 44 may be calculated based on the detected value of a temperature sensor. Alternatively, these may be calculated using other known methods.
[0036] If the result of step S1 is No, the ECU 100 permits fuel cut (step S2). Specifically, the ECU 100 turns off the fuel cut restriction flag. In this embodiment, if the fuel cut restriction flag is off, fuel cut is executed for all cylinders 30 based on the fuel cut request.
[0037] If the answer is Yes in step S1, the ECU 100 notifies the driver by displaying on the display unit 80 that the deceleration will be suppressed (step S3). This notifies the driver in advance that the deceleration will be suppressed in accordance with the fuel cutoff restriction described later, and prevents the driver from feeling uncomfortable because the fuel cutoff is not executed. Step S3 is an example of processing executed by the notification control unit.
[0038] Next, the ECU 100 suppresses the deceleration (step S4). The suppression of the deceleration may be realized, for example, by changing the upper limit value of the deceleration to a smaller value, or by multiplying the deceleration by a coefficient less than 1 to correct the deceleration to a smaller value.
[0039] Next, the ECU 100 limits the fuel cut (step S5). That is, the ECU 100 turns on the fuel cut limit flag. In this embodiment, when the fuel cut limit flag is on, fuel cut is not executed for all cylinders 30 even if a fuel cut request is made. That is, fuel injection is continued for all cylinders 30.
[0040] Next, the ECU 100 determines whether or not downhill control is being executed (step S6). If the result in step S6 is No, the control ends.
[0041] If the answer to step S6 is Yes, the ECU 100 limits the deceleration that would otherwise increase due to the execution of downhill control (step S7). That is, the deceleration during the execution of downhill control with fuel cut restricted is limited to be lower than the deceleration during the execution of downhill control with fuel cut permitted.
[0042] The deceleration may be limited, for example, by changing the upper limit of the deceleration when fuel cut is permitted and downhill control is being executed to a smaller value. Alternatively, the deceleration may be limited by multiplying the deceleration when fuel cut is permitted and downhill control is being executed by a coefficient less than 1 to correct the deceleration to a smaller value. Step S7 is an example of processing executed by the deceleration limiting unit.
[0043] By limiting the deceleration in this manner, it is possible to suppress an increase in the load on the first MG 14 and the second MG 15, which would otherwise be caused by an increase in the regenerative torque of the first MG 14 and the second MG 15 in order to ensure a high deceleration when fuel cut is limited. It is also possible to prevent the battery 18 from being overcharged by the regenerative power of the first MG 14 and the second MG 15. Furthermore, due to the structure of the reduction mechanism 52, it is necessary to rotate the first MG 14 at high speed in order to ensure a high deceleration, but this also prevents the first MG 14 from over-rotating.
[0044] The deceleration rate when fuel cut is limited and downhill control is being executed is set to be higher than the deceleration rate when fuel cut is limited and downhill control is stopped. The limit on deceleration when fuel cut is limited and downhill control is being executed can be achieved by lowering the fuel filling efficiency and increasing the engine rotation speed more than when fuel cut is limited and downhill control is stopped. Even when fuel cut is limited, at least downhill control is being executed. Therefore, it is possible to avoid the driver feeling uncomfortable because the deceleration rate is higher when downhill control is being executed than when downhill control is stopped.
[0045] Furthermore, the deceleration rate during downhill control when fuel cut is restricted is limited to be lower than the deceleration rate during downhill control when fuel cut is permitted and the vehicle is stopped. This is because if the deceleration rate during downhill control when fuel cut is restricted is set equal to the deceleration rate during downhill control when fuel cut is permitted and the vehicle is stopped, the load on the first MG 14 and the second MG 15 may increase, as described above. Note that the deceleration rates during deceleration control and when the vehicle is stopped refer to the deceleration rate when the shift range is in D.
[0046] The deceleration rate when fuel cut is limited and downhill control is being executed is limited to, but not limited to, a rate lower than the deceleration rate when fuel cut is permitted and downhill control is stopped. The deceleration rate when fuel cut is limited and downhill control is being executed may be equal to or higher than the deceleration rate when fuel cut is permitted and downhill control is stopped. The deceleration rate when fuel cut is limited and downhill control is being executed may be set appropriately taking into account the load tolerance of first MG 14 and second MG 15, the charge capacity of battery 18, etc.
[0047] In the above embodiment, as an example of limiting fuel cut, a case where fuel cut is limited to all cylinders 30 of the engine 10, i.e., a case where fuel injection is continued in all cylinders 30, has been described. However, this is not limiting. For example, fuel cut may be limited to only some of the cylinders 30. In this case, fuel injection is continued in some of the cylinders 30, and fuel cut is performed in the remaining cylinders 30. This is because, compared to when fuel cut is performed in all cylinders 30, deceleration is suppressed and the amount of oxygen supplied to the GPF 44 is also suppressed, making it possible to suppress excessive temperature rise of the GPF 44.
[0048] In the above embodiment, the hybrid vehicle 1 is described as having the engine 10, the first MG 14, and the second MG 15 as a driving power source, but the hybrid vehicle is not limited to this. For example, the hybrid vehicle may have an engine as a driving power source and a motor arranged on a power transmission path from the engine to the wheels.
[0049] Although the embodiments of the present invention have been described in detail above, the present invention is not limited to such specific embodiments, and various modifications and variations are possible within the scope of the gist of the present invention as defined in the claims. [Explanation of symbols]
[0050] 10 Engine 14 First motor generator 15 Second motor generator 44 GPF (filter) 100 ECU (hybrid vehicle control device, deceleration control unit, fuel cut control unit, downhill control unit, deceleration limit unit, overheating prediction unit, notification control unit)
Claims
1. A control device for a hybrid vehicle, a deceleration control unit that controls the engine and motor, which are driving power sources, to control the deceleration of the hybrid vehicle; a fuel cut control unit that limits or permits fuel cut in the engine based on whether a predetermined condition is satisfied or not; a downhill control unit that executes downhill control to increase the deceleration when the hybrid vehicle is traveling downhill compared to when the hybrid vehicle is traveling on a flat surface; a deceleration limiting unit that limits the deceleration during execution of the downhill control with fuel cut restricted to be lower than the deceleration during execution of the downhill control with fuel cut permitted, the deceleration limiting unit limits the deceleration when fuel cut is limited and the downhill control is being executed to be higher than the deceleration when fuel cut is limited and the downhill control is stopped, The deceleration limiting unit limits the deceleration when fuel cut is restricted and the downhill control is being executed to be lower than the deceleration when fuel cut is permitted and the downhill control is stopped.
2. A control device for a hybrid vehicle, a deceleration control unit that controls the engine and motor, which are driving power sources, to control the deceleration of the hybrid vehicle; a fuel cut control unit that limits or permits fuel cut in the engine based on whether a predetermined condition is satisfied or not; a downhill control unit that executes downhill control to increase the deceleration when the hybrid vehicle is traveling downhill compared to when the hybrid vehicle is traveling on a flat surface; a deceleration limiting unit that limits the deceleration during execution of the downhill control with fuel cut restricted to be lower than the deceleration during execution of the downhill control with fuel cut permitted; A control device for a hybrid vehicle comprising: a notification control unit that, when fuel cut is restricted, causes a notification unit to notify that the deceleration will be restricted.
3. an overheating prediction unit that predicts whether a filter that captures particulate matter in exhaust gas from the engine will overheat due to a fuel cut; 3. The control device for a hybrid vehicle according to claim 1, wherein the fuel cut control unit restricts fuel cut by determining that the predetermined condition is met when it is predicted that the filter will overheat, and permits fuel cut by determining that the predetermined condition is not met when it is predicted that the filter will not overheat.
Citation Information
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